Structural Controls on Iron Oxide Copper-Gold Mineralization and Related Alteration in a Paleoproterozoic Supracrustal Belt: Insights from the Nautanen Deformation Zone and Surroundings, Northern Sweden

被引:19
作者
Bauer, Tobias E. [1 ]
Lynch, Edward P. [2 ]
Sarlus, Zmar [1 ]
Drejing-Carroll, David [3 ,4 ]
Martinsson, Olof [1 ]
Metzger, Nicolai [1 ]
Wanhainen, Christina [1 ]
机构
[1] Lulea Univ Technol, Div Geosci & Environm Engn, SE-97187 Lulea, Sweden
[2] Geol Survey Sweden, Dept Mineral Resources, SE-75236 Uppsala, Sweden
[3] Boliden Mines Explorat AB, SE-93631 Boliden, Sweden
[4] Univ Coll Dublin, Irish Ctr Res Appl Geosci, Dublin, Ireland
关键词
AU-AG DEPOSIT; SKELLEFTE MINING DISTRICT; MOUNT-ISA INLIER; U-PB AGE; CU-AU; HYDROTHERMAL ALTERATION; KIRUNA DISTRICT; ACCRETIONARY PROCESSES; FENNOSCANDIAN SHIELD; IOCG DEPOSITS;
D O I
10.5382/econgeo.4862
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
The Nautanen deformation zone in the Gallivare area of northern Sweden is a highly Cu-mineralized, magnetite-rich, large-scale shear zone with a long-lived (similar to 100 m.y.) deformation, hydrothermal alteration, and mineralization history. This composite structure hosts the Aitik porphyry Cu-Au-Ag +/- Mo deposit and several Cu-Au +/- Fe +/- Ag +/- Mo occurrences assigned to the iron oxide copper-gold (IOCG) deposit class. The Nautanen deformation zone was a locus for polyphase deformation and intermittent metasomatic-hydrothermal activity that overprinted middle Orosirian (ca. 1.90-1.88 Ga) continental arc-related volcanic-plutonic rocks. The deformation zone is characterized by intense shearing fabrics that form a series of subvertical to moderately W-dipping, NNW-SSE-trending, first-order shear zones with oblique reverse kinematics and related NNE-SSW-oriented second-order shear zones that control hydrothermal alteration patterns and Cu-Au mineralization. Hydrothermal alteration in the study area formed during several phases. Volcanic-volcaniclastic rocks to the east and west of the Nautanen deformation zone display low to moderately intense, pervasive to selectively pervasive (i.e., patchy zones or bands, disseminations) sericite +/- feldspar, amphibole + biotite + magnetite +/- tourmaline, and K-feldspar + hematite alteration. Both the amphibole + biotite and K-feldspar + hematite associations occur adjacent to NNW-and NE-oriented deformation zones and are locally associated with minor sulfide. Within the deformation zone, a moderate to intense biotite + amphibole + garnet + magnetite + tourmaline + sericite alteration assemblage is typically associated with chalcopyrite + pyrrhotite + pyrite and forms linear and subparallel, mainly NNW-oriented seams, bands, and zones that locally appear to overprint possibly earlier scapolite + sericite +/- feldspar alteration. Late-stage epidote +/- quartz +/- feldspar alteration (retrograde saussuritization) forms selectively pervasive zones and epidote veinlets across the area and is partly related to brittle faulting. A magnetite-amphibole-biotite-rich, penetrative S-1 foliation records shortening during early Svecokarelian-related deformation (D-1) and can be related to ca. 1.88 to 1.87 Ga arc accretion processes and basin inversion that overlaps with regional peak metamorphism to near mid-amphibolite facies conditions and a potential initial Cu mineralization event. Folding and repeated shearing along the Nautanen deformation zone can be assigned to a second, late-Svecokarelian deformation event (D-2 stage, ca. 1.82-1.79 Ga) taking place at a higher crustal level. This D-2 deformation phase is related to late-stage accretionary processes active during a transition to a stage of postorogenic collapse, and it was accompanied by abundant, syntectonic intrusions. D2-related magmatism produced high-temperature and low-pressure conditions and represents a regional magmatic-hydrothermal event that controlled the recrystallization/remobilization of magnetite, biotite, and amphibole. Associated shear zone reactivation during D-2 favors the utilization of the Nautanen deformation zone as a fluid conduit, which preferentially controlled the siting and formation of epigenetic Cu-Au mineralization with distinctive IOCG characteristics within second-order shear zones.
引用
收藏
页码:327 / 359
页数:33
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